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Development and degeneration of retina in rds mutant mice: ultraimmunohistochemical localization of opsin.

In normal retina the developing photoreceptor cells first show presence of opsin over the distal ends of the ciliary protrusions. In a fully differentiated cell intense activity is seen over the rod outer-segment discs; some activity is also seen over the Golgi zone and near the distal ends of the inner segments but the other parts of the receptor cell appear negative. In the pigment epithelium opsin is seen only over phagosomes containing rod outer segment debris. In the homozygous rds mutant retina, developing receptor cells show opsin activity over the ciliary protrusions as in the normal. These ciliary protrusions grow in size and show increased opsin activity and presumably constitute the site of phototransduction in the mutant retina. Although typical disc structures remain lacking, variable amounts of immunopositive, irregular, membranous structures are occasionally observed. The inner segments in the mutant cells show very little immunoreactivity but the perikarya and the spherule terminals show increased immunoreactivity in comparison with the normal. At the onset of degeneration, some of the receptor cells in the mutant retina show extrusion of small, membrane-bound vesicles which are immunopositive for opsin. Some receptor cells undergoing lysis disintegrate and also add to the opsin-positive vesicular structures in the interphotoreceptor space. The vesicles are phagocytized by pigment epithelial cells. In older mutant mice at an advanced stage of degeneration, the receptor cells show reduced opsin activity. In heterozygous mutant mice the outer segments are reduced in length and the discs are abnormal in form. However, the intensity and the pattern of opsin localization in the outer segments and at other sites are similar to normal.

Animals↗

Correlation between autofluorescent debris accumulation and the presence of partially processed forms of cathepsin D in cultured retinal pigment epithelial cells challenged with rod outer segments.

The purpose of the present study was to investigate the accumulation of rod outer segment (ROS)-derived debris in cultured human retinal pigment epithelial cells (RPE). The RPE cell layer is responsible for the phagocytosis and digestion of photoreceptor outer segments. Due to the immense volume of photoreceptor-derived material processed by the RPE cells, even minor changes in the efficiency of ROS processing may cause the accumulation of lipofuscin and photoreceptor derived debris. In this work, 17 RPE cultures were established from the globes of eye bank donors whose ages ranged from 18 to 79 years. Third passage cultures were challenged with bovine ROS and the accumulation of an autofluorescent debris was quantified using a flow cytometer. It was demonstrated that ROS challenge greatly increased the rate of autofluorescent debris accumulation. The accumulation of autofluorescent debris varied significantly from culture to culture. This variation was independent of the phagocytosing capacity of individual cultures and was not age dependent. To further investigate the factors which may be responsible for these differences, the presence of cathepsin D, an aspartic protease responsible for 80% of proteolysis of rhodopsin, was analysed by Western blot. Although the 34 kDa active form of cathepsin D was found in all cultures, in 41% of the cultures higher-molecular-weight forms of cathepsin D were additionally present, thus providing a multimer form of cathepsin D in these cultures. The rate of autofluorescent debris accumulation in cultures possessing a multimer form of cathepsin D was significantly greater (mean 42.3, S.D. +/- 19.8) than those in cultures having a singlet active form (mean 18.8, S.D. +/- 5.5) at 34 kDa (Student's t-test, DF = 15, t = 6.834, P < 0.001). The former cultures included one from a donor with age related macular degeneration, the latter cultures included one from a donor with diabetic retinopathy. This study demonstrates that the rate of autofluorescent debris accumulation in cultured RPE cells is not age dependent, but is an intrinsic property of the donor RPE cells that is possibly related to the presence of a multimer form of the lysosomal enzyme cathepsin D.

Animals↗

Experimental chloroquine retinopathy.

Chloroquine retinopathy was produced experimentally in the eye of the albino corydoras (one of the tropical fish) by daily administration of chloroquine (0.1 mg per os). The enucleated eyes were examined from the 14th day to 3 months after the beginning of drug administration under light and electron microscopy. The first change of retina was the appearance of membraneous cytoplasmic body (MCB) in the cytoplasm of ganglion, amacrine, bipolar and horizontal cells. MCB might be degenerated lysosome. They showed lamellar figures or crystalline lattice-like structures. Secondarily, these MCB appeared in the inner segments of photoreceptor cells. The outer segments of rod cells disappeared, and then those of cone cells. Although photoreceptor cells were diminished in number in advanced degeneration, the cells of inner nuclear layer and ganglion cells were maintained in number. The presence of MCB dose not mean death of cells. The retinal pigment epithelial cells contained MCB in its cytoplasm only in severe degenerative cases, and did not show other remarkable changes. MCB also appeared in the cytoplasm of pericytes of retinal vessels. Chloroquine is considered to damage directly photoreceptor cells most severely.

Animals↗

Evidence for the transport of opsin in the connecting cilium and basal rod outer segment in rat retina: rapid-freeze, deep-etch and horseradish peroxidase labelling studies.

In order to clarify the pathway of opsin transport in the connecting cilium and basal rod outer segment, we examined rat rod cells by a rapid-freeze and deep-etch technique and also examined the uptake of horseradish peroxidase into isolated retina. The distribution of intramembrane particles on the P-face of the cilium indicated that the ciliary plasma membrane has similar opsin content to the basal rod outer segment plasma membrane. Dilated cisternae were detected below the stack of disk membranes at the basal rod outer segment in fresh retina. The fine structure of the P-face and true surface of these cisternae was identical to that of the disk membrane. Uptake of horseradish peroxidase was detected in the cisternae or in both cisternae and most basal disk, indicating that the cisternae are formed prior to the disk membrane. In the distal part of connecting cilium, we found axially oriented infoldings on the P-face of the plasma membrane, and subplasmalemmal tubules or cisternae adjacent and parallel to them. Such subplasmalemmal membranes were labeled by exogenous horseradish peroxidase, suggesting that the infoldings are invaginating plasma membrane. These results may indicate that opsin molecules are conveyed on the ciliary plasma membrane, and that this opsin-rich plasma membrane is internalized in the distal connecting cilium to form dilated cisternae, which subsequently change to the disk membranes.

Animals↗

Different receptors for distribution of peanut and ricin agglutinins between inner and outer segments of rod cells.

Lectins can be used as probes for cell-surface oligosaccharides1-4. These proteins display high specificities for certain haptene sugars, although the details of the sugar linkages and the three-dimensional array of the oligosaccharide may all be involved in determining the affinity of a lectin for its receptor. We have now shown that peanut and ricin agglutinins bind differentially to the surfaces of rod inner and outer segments.

Animals↗

Activation of mislocalized opsin kills rod cells: a novel mechanism for rod cell death in retinal disease.

Rod photoreceptors are highly compartmentalized sensory neurons that maintain strict ultrastructural and molecular polarity. Structural subdivisions include the outer segment, inner segment, cell body, and synaptic terminal. The visual pigment rhodopsin is found predominantly in membranes of the rod cell outer segment but becomes mislocalized, appearing throughout the plasma membrane of the cell in many retinal diseases and injuries. Currently, there is no known link between rhodopsin redistribution and rod cell death. We propose that activation of mislocalized rhodopsin kills rod cells by stimulating normally inaccessible signaling pathways. This hypothesis was tested in primary retinal cell cultures, which contain photoreceptors. In rod photoreceptors, opsin immunofluorescence occurred throughout the rod cell plasma membrane. Activation of this mislocalized opsin by photostimulation after formation of isorhodopsin or by incubation with beta-ionone (opsin agonist) killed 19-30% of rod cells. Rod cell death was apoptotic, as indicated by marked chromatin condensation and the requirement for caspase-3 activation. Rod cell death could be induced by forskolin (adenylate cyclase agonist), and conversely, beta-ionone-induced cell death could be blocked by cotreatment with SQ22536 (an adenylate cyclase inhibitor). Pertussis toxin (a G protein inhibitor) also blocked beta-ionone-induced cell death. The data support a mechanism by which activation of mislocalized opsin initiates apoptotic rod cell death through G protein stimulation of adenylate cyclase.

Adenine↗

Sorbitol, myo-inositol, and rod outer segment phagocytosis in cultured hRPE cells exposed to glucose. In vitro model of myo-inositol depletion hypothesis of diabetic complications.

The "myo-inositol depletion hypothesis" remains a leading but still controversial contender among proposed pathogenetic mechanisms for the chronic complications of diabetes. The multifaceted interrelationships among altered tissue myo-inositol content and metabolism and tissue function have been difficult to elucidate in diabetic animal models due in part to the complex, heterogeneous nature of tissues prone to diabetic complications. The retinal pigment epithelium consists of a homogenous cell monolayer that exhibits related alterations in myo-inositol metabolism and function in diabetic animals. Nontransformed human retinal pigment epithelial (hRPE) cells, which retain their general phenotypic and morphological characteristics during monolayer culture in vitro, were examined for parallel alterations in myoinositol metabolism and cell function when grown under carefully controlled conditions in medium containing hyperglycemic concentrations of glucose. Exposure of hRPE cells to 20-40 mM glucose produced time- and dose-dependent increases in sorbitol content and decreases in myo-inositol content that were partially blocked by the aldose reductase inhibitor sorbinil. myo-Inositol was taken up by two Na-dependent transport systems, at least one of which was competitively inhibited by glucose. Exposure to 20 mM glucose impaired the ability of hRPE cells to take up human retinal rod outer segments, an important physiological function of these cells. The impairment of rod outer segment uptake by high glucose levels was prevented by an aldose reductase inhibitor or elevated medium myo-inositol that corrected the fall in myo-inositol content. Thus, hRPE cells provide a new in vitro model in which to examine the biochemical-functional interrelationships of the myo-inositol depletion hypothesis.

Adult↗

Cytokine effects on phagocytosis of rod outer segments by retinal pigment epithelial cells of normal and dystrophic rats.

PURPOSE: Phagocytosis of rod outer segments (ROS) is an important function of retinal pigment epithelial (RPE) cells. Since the details of the process are not fully known, we studied effects of cytokines produced by RPE and photoreceptor cells on phagocytosis of ROS by rat RPE cells. METHODS: RPE cells were isolated and cultivated from two strains of rats: Sprague-Dawley (SD) rats with normal phagocytosis and Royal College of Surgeons (RCS) rats, which have genetic deficiencies in ROS phagocytosis. A double immunofluorescence staining technique was used to study the effects in vitro of several cytokines on phagocytosis of ROS. RESULTS: We found that transforming growth factor beta-1 (TGF-beta 1) had dose-dependent effects on RPE cells of both strains of rat: at a concentration of 10 ng/ml, TGF-beta 1 significantly (p < 0.01) reduced total ROS (to 74% of control in SD rats and to 51% of control in RCS rats), reduced bound ROS (to 56% of control in SD rats and to 48% in RCS rats), and increased the ratio of ingested ROS to total ROS (to 140% in SD rats but not significantly in RCS rats). Treatment of medium with anti-TGF-beta 1 antibody before incubation of RPE cells of SD rats with TGF-beta 1 decreased the magnitude of these effects. The cytokine acidic fibroblast growth factor (aFGF, 10 ng/ml) affected RPE cells of SD rats only, decreasing ROS ingested to 56% of control and the ratio of ingested ROS to total ROS to 64% of control. We also examined effects of basic fibroblast growth factor and insulin-like growth factor. None of the cytokines tested increased ingestion of ROS by RPE cells of RCS rats. CONCLUSIONS: Our results suggest that TGF-beta 1 and aFGF have roles in regulating ROS phagocytosis by normal and dystrophic RPE cells in the rat.

Animals↗

Structural and functional characterization of the rod outer segment membrane guanylate cyclase.

In the vertebrate photoreceptor cell, rod outer segment (ROS) is the site of visual signal-transduction process, and a pivotal molecule that regulates this process is cyclic GMP. Cyclic GMP controls the cationic conductance into the ROS, and light causes a decrease in the conductance by activating hydrolysis of the cyclic nucleotide. The identity of the granylate cyclase (ROS-GC) that synthesizes this pool of cyclic GMP is unknown. We now report the cloning, expression and functional characterization of a DNA from bovine retina that encodes ROS-GC.

Adenosine Triphosphate↗

Metabolism in frog retinal pigment epithelium of docosahexaenoic and arachidonic acids derived from rod outer segment membranes.

Frog photoreceptor cells shed about 10% of their rod outer segments (ROS) every 4th day. Packets of these membranes are phagocytized and digested by retinal pigment epithelial (RPE) cells. Large amounts of lipids must be processed daily, especially docosahexaenoic acid (22:6n-3, DHA), the major fatty acid of these membranes. To study the metabolism of ROS lipids in RPE cells, RPE-eyecups were incubated with [3H]DHA-, [3H]arachidonic acid (AA)-, or [2-3H]glycerol-labeled ROS membranes for 2 hr, followed by a chase for up to 8 hr. Lipid extracts of RPE cells and incubation media were resolved into classes and quantitated for radioactivity. In RPE cells, the relative proportion of DHA and AA label in triglycerides (TG) increased dramatically with incubation time, although the substrate ROS membranes did not contain labeled TG. Other RPE lipids showed prominent reductions or relative little change. The percentage of radioactivity in free fatty acids (FFA) was low (< 3%) in RPE cells. In the chase media, the majority (60-80%) of DHA and AA label was found in FFA, with little radioactivity in TG or phospholipids. When RPE cells were incubated with [3H]glycerol-labeled ROS membranes which contained 22% of the label in TG, the most rapid reduction in relative radioactivity appeared in TG. We conclude that DHA and AA are released from phagocytized ROS membranes and are rapidly incorporated into RPE cellular lipids, primarily TG. This lipid class is very active metabolically, since TG derived from ROS are rapidly hydrolysed. Free DHA and AA of ROS origin are released from RPE cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Characterization and application of an in vitro detection system for studying the binding and phagocytosis of rod outer segments by retinal pigment epithelial cells.

Direct and indirect radioactivity and fluorescent assays have been developed to study the interaction of rod outer segments (ROS) with retinal pigment epithelial (RPE) cells. In the direct assays ROS labelled with 125I or fluorescein isothiocyanate (FITC) have been used to measure total phagocytosis, i.e. surface binding and ingestion. In the indirect assays RPE cells were first treated with unlabelled ROS or biotinylated ROS and subsequently probed with [125I]Rho 4D2 antirhodopsin antibody or [125I]streptavidin for radioactivity measurements or with the Rho 4D2 antibody and FITC-goat anti-mouse Ig or FITC-streptavidin for fluorescent counting. In these indirect methods the number of surface bound ROS were distinguished from the number of ingested ROS by comparative labelling of non-permeabilized and permeabilized ROS-treated RPE cells. Using these assays, we have studied the binding and ingestion of bovine ROS with cultured bovine RPE cells. As in the case of newborn cultured rat RPE cells [Hall and Abrams (1987) Exp. Eye Res. 45, 907-22], binding and ingestion of bovine ROS by bovine RPE cells was saturable with respect to ROS concentration and time. At 37 degrees C ROS binding reached a saturating concentration at 1 x 10(7) ROS per well; the number of bovine ROS ingested by bovine RPE cells, however, was less than the number of rat ROS ingested by rat RPE cells. When 1 x 10(7) ROS per well was used, maximal surface binding of bovine ROS to bovine RPE cells was obtained after 2-3 hr, whereas after an initial delay, ingestion rapidly increased to a maximum at 1-2 hr.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Phagocytosis of rod outer segments by retinal pigment epithelial cells requires alpha(v)beta5 integrin for binding but not for internalization.

Phagocytosis of shed photoreceptor rod outer segments (ROS) by the retinal pigment epithelium (RPE) is essential for retinal function. Here, we demonstrate that this process requires alpha(v)beta5 integrin, rather than alpha(v)beta3 integrin utilized by systemic macrophages. Although adult rat RPE expressed both alpha(v)beta3 and alpha(v)beta5 integrins, only alpha(v)beta3 was expressed at birth, when the retina is immature and phagocytosis is absent. Expression of alpha(v)beta5 was first detected in RPE at PN7 and reached adult levels at PN11, just before onset of phagocytic activity. Interestingly, alpha(v)beta5 localized in vivo to the apical plasma membrane, facing the photoreceptors, and to intracellular vesicles, whereas alpha(v)beta3 was expressed basolaterally. Using quantitative fluorimaging to assess in vitro uptake of fluorescent particles by human (ARPE-19) and rat (RPE-J) cell lines, alpha(v)beta5 function-blocking antibodies were shown to reduce phagocytosis by drastically decreasing (85%) binding of ROS but not of latex beads. In agreement with a role for alpha(v)beta5 in phagocytosis, immunofluorescence experiments demonstrated codistribution of alpha(v)beta5 integrin with internalized ROS. Control experiments showed that blocking alpha(v)beta3 function with antibodies did not inhibit ROS phagocytosis and that alpha(v)beta3 did not colocalize with phagocytosed ROS. Taken together, our results indicate that the RPE requires the integrin receptor alpha(v)beta5 specifically for the binding of ROS and that phagocytosis involves internalization of a ROS-alpha(v)beta5 complex. Alpha(v)beta5 integrin does not participate in phagocytosis by other phagocytic cells and is the first of the RPE receptors involved in ROS phagocytosis that may be specific for this process.

Animals↗

The distribution of actin in cultured normal and dystrophic rat pigment epithelial cells during the phagocytosis of rod outer segments.

In the previous article the authors reported that the ingestion phase of phagocytosis is defective in cultured dystrophic rat pigment epithelial (PE) cells. When these cells are challenged with isolated rod outer segments (ROS), attachment of ROS to the PE cell surfaces occurs to a normal extent. However, only a small number of these bound ROS are subsequently ingested. This raised the possibility that the contractile protein actin might not function normally in the dystrophic rat PE cells, since actin is intimately involved in the ingestion mechanism in other phagocytic cells. Utilizing actin antibodies and the technique of indirect immunofluorescence, we have studied the distribution of actin in cultured normal and dystrophic rat PE cells. Results show that the arrangement of actin fibers in the dystrophic cells appears normal both before and during the attachment of ROS to the cell surfaces. With the additional use of an ROS antiserum to label externally bound ROS, it is also possible to show that actin is involved with the ingestion of ROS by both normal and dystrophic PE cells. Thus, it appears that actin can function normally in dystrophic PE cells, but that the ingestion mechanism becomes activated at only a few sites of ROS attachment. The results of a scanning electron microscope study support this conclusion and also show the presence of a saucer-shaped elaboration of the PE cell plasma membrane beneath attached ROS. These may correspond to the actin feltworks seen with immunofluorescence microscopy at sites of ROS attachment.

Actins↗

Isolation of plasma membranes from the bovine retinal pigment epithelium.

Retinal pigment epithelium plasma membranes have been isolated by differential and density gradient centrifugation of glass-bead-bound, collagenase-treated cells. Electron microscopic evidence indicates that the glass-bead-bound cells were devoid of red blood cells, rod outer segments and other ocular cell contaminants. The plasma membranes were recovered in 4-6 micrograms/eye yields and purified 10-fold by 5'-nucleotidase and alkaline phosphodiesterase I, and 6.5-fold by (Na+ + K+)-ATPase. Plasma membrane purity as measured by covalent labeling of the epithelial cell plasma membrane proteins with p-(diazonium) benzene[32S]sulfonic acid was 8-19-fold. In purified plasma membranes contamination by mitochondria was undetectable and lysosomal contamination reduced 100-fold, while endoplasmic reticulum was 2-fold enriched. SDS-polyacrylamide gel electrophoresis of the plasma membrane proteins revealed 23-26 major bands by Coomassie blue staining and 12-16 major bands by radioactive labeling. The plasma membranes exhibited a 3-fold lower concentration of docosahexaenoic acid, a 3-fold higher cholesterol/phosphate ratio, and were 10-fold enriched in cholesterol per micrograms protein when compared to the whole cell fraction. Retinal epithelial plasma membranes contain an average of 1 mol cholesterol per mol of lipid phosphorus, a high palmitic acid concentration (39 mol%) and a low concentration of docosahexaenoic acid (2 mol%). The lipid profile of the retinal pigment epithelial plasma membranes indicates that they are typical of plasma membranes from many other cell types and that they appear to be less fluid than total rod outer segment membranes.

5'-Nucleotidase↗

Defective ingestion of rod outer segments by cultured dystrophic rat pigment epithelial cells.

A new procedure for assaying the phagocytosis of rod outer segments (ROS) by cultured rat pigment epithelial (PE) cells has been developed. Using an ROS antiserum and a double immunofluorescent labeling procedure, ROS attached to the external surfaces of these cells can be distinguished from those that have already been ingested. We have used this procedure to study the phagocytosis of ROS by PE cells isolated from normal rats and rats with inherited retinal dystrophy (RCS rats). With this approach we have been able to show that the attachment of ROS to the external surfaces of dystrophic PE cells does take place to a normal extent. However, only a small number of these bound ROS are subsequently ingested, demonstrating that the ingestion phase of phagocytosis is defective. After a 4-hr incubation during which ROS are continuously present, normal rat PE cells ingest about 80% of the ROS that have bound to the cell surfaces. In contrast, after this time period, less than 20% of the ROS bound to the dystrophic PE cells have been ingested. These results, as well as the results of pulse-chase experiments in which ROS are rinsed away after two hours and the incubation continued without further addition of ROS, have demonstrated that normal PE cells rapidly ingest most of the bound ROS, whereas the dystrophic PE cells show no such rapid ingestion. Both cell types, however, are able to slowly ingest additional bound ROS with time.

Animals↗

Kinetic studies of rod outer segment binding and ingestion by cultured rat RPE cells.

Retinal pigment epithelial (RPE) cells selectively phagocytize rod outer segments (ROS) by a process which may be mediated by specific cell surface receptors. We have studied the kinetics of this process using rat RPE cells grown in tissue culture. By cooling RPE cells to 17 degrees C, the binding and ingestion phases of phagocytosis can be separated. Maximum ROS binding with minimum ingestion occurs at 17 degrees C; above 17 degrees C the rate of ingestion increases markedly. Thus it is possible to measure the kinetics of ROS binding to RPE cells at 17 degrees C and of ROS ingestion at 37 degrees C. At 17 degrees C, ROS binding is saturable, both with respect to time and to ROS concentration. ROS ingestion saturates after 4 hr of incubation at 37 degrees C, after which the cells are refractory to further ROS ingestion for 1-2 hr. During this recovery period, rapid digestion of the internalized ROS takes place. Cycloheximide, when present at a concentration (2 x 10(-5) M) which inhibits protein synthesis by 92%, has no effect on ROS phagocytosis or on the recovery of ROS ingestion at 37 degrees C. This suggests that if receptors mediate the ingestion of ROS by RPE cells, they are not degraded after the ROS are internalized. Dystrophic rat (RCS-p+) RPE cells exhibit normal binding, but very limited ingestion of ROS at 37 degrees C. The rate and amount of ROS binding to these cells at 37 degrees C is comparable with that occurring to normal cells at 17 degrees C. These observations support the hypothesis that there are a limited number of receptors which are specific for ROS binding on the surface of normal and dystrophic rat RPE cells.

Animals↗

RCS rat retinal rod outer segment membranes exhibit different cholesterol distributions than those of normal rats.

Royal College of Surgeons (RCS) rats exhibit an hereditary defect in phagocytosis of the tips of the photoreceptor cell rod outer segments (ROS) which leads to degeneration of the retinal visual cells. The lipid composition of outer segment membranes of these rats was analysed and compared to those of normal rats to determine whether there are differences between the normal and mutant rat ROS. The cholesterol distribution in ROS disk membranes from normal and RCS rats was investigated using a digitonin induced change in membrane density. Normal rat ROS disks varied in cholesterol to phospholipid mole ratio from 0.36 to 0.03. The disk membranes from RCS rats, however, do not exhibit the same marked cholesterol heterogeneity. The mean molar ratio of cholesterol to phospholipid in the disk membranes of normal rats is 0.11 while that found in the RCS rats is 0.14. The ROS plasma membrane of dystrophic rats also has a lower cholesterol to phospholipid ratio (0.20) than is found in the normal rat (0.40). The phospholipid headgroup composition of RCS disks and plasma membrane were determined. RCS disks were shown to differ from those of normal animals. The cholesterol content of ROS disks may be governed by the phospholipid composition.

Animals↗

Phospholipase D from photoreceptor rod outer segments is a downstream effector of RhoA: evidence of a light-dependent mechanism.

Photoreceptor cells contain rod outer segments (ROS) which are specialized light-sensitive organelles. The biological function of ROS is to generate a photoresponse, which occurs via the classic transducin-mediated pathway. Moreover, ROS undergo light-regulated membrane turnover and protein translocation whose mechanisms have not been fully elucidated to date. Phospholipase D (PLD) is a key enzyme involved in lipid signal transduction and membrane trafficking. We have previously reported that PLD activity is present in purified ROS (Salvador, G.A., Giusto, N.M., 1998. Characterization of phospholipase D activity in bovine photoreceptor membranes. Lipids 33, 853-860). We now demonstrate that ROS PLD activity is enhanced by phosphatidylinositol bisphosphate (PIP2) and cytosolic factors in a GTP dependent-manner. Western blot analysis demonstrates the presence of PLD1 isoform in purified ROS. In ROS obtained from dark-adapted retinas (DROS), PIP2-dependent PLD activity was higher than that observed in ROS obtained from light-adapted retinas (LROS). In addition, experiments carried out in the presence of C3 toxin inhibited PLD activity from DROS whereas pertussis toxin did not affect the enzyme activity. Western blot analysis demonstrates the presence of RhoA, a PLD upstream-regulator. Moreover, RhoA levels were higher in DROS with respect to those in LROS. The present study reports evidence of the involvement of the small G-protein, RhoA, in ROS PLD regulation. Our data strongly suggest that RhoA regulates ROS PLD activity under a light-dependent mechanism.

Adaptation, Ocular↗